Claims
- 1. An electro-optic device for use with a laser beam, comprising:
a crystal having a first face and a second face, said crystal composed of a compound having the chemical formula ReAe40(BO3)3 where: RE consists of one or more of the following elements La, Ce, Pr, Nd, Sm, Eu, Gd, Th, Dy, Ho, Er, Tm, Yb, Lu and two other elements Y and Sc; and where Ae is from the list of Ca, Sr, or Ba; and a means for applying a voltage across said crystal to obtain a net phase retardation on the polarization of said laser beam when said laser beam is passed through said crystal.
- 2. The electro-optic device for use with a laser beam of claim 1 wherein said two other elements Y and Sc behave similar to rare earths.
- 3. The electro-optic device for use with a laser beam of claim 2 wherein the sum of the partial substitution of the combination of said Ca, Sr, or Ba sums to 4.
- 4. The electro-optic device for use with a laser beam of claim 1, wherein said crystal is a crystal of the type yttrium calcium oxyborate and the related isostructural crystals such as gadolinium calcium oxyborate or GdCOB, lanthanum calcium oxyborate or LaCOB or crystals of the general type ReAe40(BO3)3 where: RE consists of one or more of the following elements La, Ce, Pr, Nd, Sm, Eu, Gd, Tb, Dy, Ho, Er, Tm, Yb, Lu and two other elements Y and Sc which behave similar to rare earths; where Ae is from the list of Ca, Sr, or Ba and the sum of the partial substitution of the combination of these elements sums to 4.
- 5. The electro-optic device for use with a laser beam of claim 1, wherein said crystal is yttrium calcium oxyborate (YCa4O(BO3)3.
- 6. The electro-optic device of claim 1, wherein said means for applying a voltage across said crystal utilizes a standard high-voltage power supply.
- 7. The electro-optic device of claim 1, wherein said means for applying a voltage across said crystal utilizes a pulsed high voltage power supply.
- 8. The electro-optic device of claim 1, including a first electrode operatively connected to said first face, a second electrode operatively connected to said second face, and wherein said means for applying a voltage across said crystal utilizes a standard high-voltage power supply operatively connected to said first electrode and said second electrode.
- 9. The electro-optic device of claim 8, including a metal plate operatively connected to said first face and to said first electrode, and a metal plate operatively connected to said second face and to said second electrode.
- 10. The electro-optic device of claim 8, including a metal layer operatively connected to said first face and to said first electrode, and a metal layer operatively connected to said second face and to said second electrode.
- 11. The electro-optic device of claim 1, including a first electrode operatively connected to said first face, a first electrode operatively connected to said first face, and wherein said means for applying a voltage across said crystal utilizes a pulsed high voltage power supply operatively connected to said first electrode and said second electrode.
- 12. The electro-optic device of claim 11, including a metal plate operatively connected to said first face and to said first electrode, and a metal plate operatively connected to said second face and to said second electrode.
- 13. The electro-optic device of claim 11, including a metal layer operatively connected to said first face and to said first electrode, and a metal layer operatively connected to said second face and to said second electrode.
- 14. An electro-optic device for use with a laser beam, comprising:
a yttrium calcium oxyborate (YCa4O(BO3)3 or YCOB) crystal having a first face and a second face, a first metal element/electrode operatively connected to said first face, a second metal element/electrode operatively connected to said second face, and a means for applying a voltage across said yttrium calcium oxyborate (YCa4O(B03)3 or YCOB) crystal utilizing said first metal element/electrode and said second metal element/electrode to obtain a net phase retardation on the polarization of said laser beam when said laser beam is passed through said yttrium calcium oxyborate (YCa4O(BO3)3 or YCOB) crystal.
- 15. The electro-optic device of claim 14, wherein said means for applying a voltage across said yttrium calcium oxyborate (YCa4O(BO3)3 or YCOB) crystal utilizes a standard high-voltage power supply.
- 16. The electro-optic device of claim 14, wherein said means for applying a voltage across said yttrium calcium oxyborate (YCa4O(BO3)3 or YCOB) crystal utilizes a pulsed high voltage power supply.
- 17. The electro-optic device of claim 14, wherein said first metal element/electrode is a metal plate and said second metal element/electrode is a metal plate.
- 18. The electro-optic device of claim 14, wherein said first metal element/electrode is a metal layer and said second metal element/electrode is a metal layer.
- 19. A method of producing an electro-optic device for operation with a laser beam, comprising the steps of:
placing a crystal in operative position relative to metal electrodes, said crystal composed of a compound having the chemical formula ReAe4O(BO3)3 where: RE consists of one or more of the following elements La, Ce, Pr, Nd, Sm, Eu, Gd, Th, Dy, Ho, Er, Tm, Yb, Lu and two other elements Y and Sc; and where Ae is from the list of Ca, Sr, or Ba; and applying a voltage across said crystal thereby obtaining a net phase retardation on the polarization of said laser beam when said laser beam is passed through said crystal.
- 20. The method of producing an electro-optic device of claim 19 wherein said two other elements Y and Sc behave similar to rare earths.
- 21. The method of producing an electro-optic device of claim 19 wherein the sum of the partial substitution of the combination of said Ca, Sr, or Ba sums to 4.
- 22. The method of producing an electro-optic device of claim 19 wherein said crystal has a first face and a second face, and including the steps of operatively connecting a metal plate to said first face and to said first electrode, and operatively connecting a metal plate to said second face and to said second electrode.
- 23. The method of producing an electro-optic device of claim 19 wherein said crystal has a first face and a second face, and including the steps of operatively connecting a metal layer to said first face and to said first electrode, and operatively connecting a metal layer to said second face and to said second electrode.
- 24. The method of producing a electro-optic device of claim 19 wherein said step of applying a voltage across said crystal comprises applying said voltage with standard high-voltage power supplies or pulsers.
- 25. A crystal for use with a laser beam, comprising:
a crystal composed of a compound having the chemical formula ReAe4O(BO3)3 where: RE consists of one or more of the following elements La, Ce, Pr, Nd, Sm, Eu, Gd, Th, Dy, Ho, Er, Tm, Yb, Lu and two other elements Y and Sc; and where Ae is from the list of Ca, Sr, or Ba.
- 26. The crystal for use with a laser beam of claim 25 wherein said two other elements Y and Sc behave similar to rare earths.
- 27. The crystal for use with a laser beam of claim 25 wherein the sum of the partial substitution of the combination of said Ca, Sr, or Ba sums to 4.
- 28. The crystal for use with a laser beam of claim 25 wherein said compound is of the type yttrium calcium oxyborate and the related isostructural crystals such as gadolinium calcium oxyborate or GdCOB, lanthanum calcium oxyborate or LaCOB, or crystals of the general type ReAe4O(BO3)3 where: RE consists of one or more of the following elements La, Ce, Pr, Nd, Sm, Eu, Gd, Tb, Dy, Ho, Er, Tm, Yb, Lu and two other elements Y and Sc which behave similar to rare earths; where Ae is from the list of Ca, Sr, or Ba and the sum of the partial substitution of the combination of these elements sums to 4.
- 29. The crystal for use with a laser beam of claim 25 wherein said compound is yttrium calcium oxyborate (YCa4O(BO3)3.
- 30. The crystal for use with a laser beam of claim 25 wherein applying a voltage across said crystal obtains a net phase retardation on the polarization of said laser beam when said laser beam is passed through said crystal.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Provisional Application No. 60/288,703, filed May 3, 2001 titled “New Electro-optic Modulator Material.” U.S. Provisional Application No. 60/288,703, filed May 3, 2001 titled “New Electro-optic Modulator Material” is incorporated herein by this reference.
Government Interests
[0002] The United States Government has rights in this invention pursuant to Contract No. W-7405-ENG-48 between the United States Department of Energy and the University of California for the operation of Lawrence Livermore National Laboratory.
Provisional Applications (1)
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Number |
Date |
Country |
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60288703 |
May 2001 |
US |